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首页> 外文期刊>European Polymer Journal >Stiffening mechanisms in vermiculite-amorphous polyamide bio-nanocomposites
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Stiffening mechanisms in vermiculite-amorphous polyamide bio-nanocomposites

机译:ul石-非晶态聚酰胺生物纳米复合材料的加硬机理

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摘要

Sub-micron thick flakes were obtained by sonication of vermiculite that was first exfoliated by either thermal shock or chemical treatment with hydrogen peroxide. Dimer fatty acid polyamide nanocomposites with a mixed morphology were prepared via a solution dispersion technique. The large (in the micrometre range) vermiculite flakes assumed random orientations in the matrix. BET surface area measurements indicated flake thickness below 100 nm but SEM showed that thicker flakes were also present. Filler content was varied up to 30 wt.%. At this loading, the tensile strength doubled, the modulus increased fivefold but the elongation-at-break decreased by a factor of ten. Dynamic mechanical analysis suggests that three stiffening mechanisms were operating. The reinforcing effect of the high stiffness inorganic flakes is the primary contributor. Together with the chain confinement effect, that expresses itself in an apparent increase in the glass transition temperature, this provided an adequate rationalisation of the stiffness variation below T-g. However, an additional stiffening effect is indicated at temperatures above Tg. The mechanism may involve dynamic network formation based on fluctuating hydrogen bonding interactions between the matrix polymer chains and the filler particles. (C) 2015 Elsevier Ltd. All rights reserved.
机译:通过of石的超声处理获得亚微米厚的薄片,首先通过热冲击或用过氧化氢进行化学处理将ver石剥落。通过溶液分散技术制备了具有混合形态的二聚脂肪酸聚酰胺纳米复合材料。大型ver石片(在微米范围内)在基质中假定为随机取向。 BET表面积测量表明薄片厚度低于100nm,但是SEM显示也存在较厚的薄片。填料含量变化至30重量%。在这种载荷下,抗拉强度增加了一倍,模量增加了五倍,但断裂伸长率降低了十倍。动态力学分析表明正在运行三种加强机制。高刚度无机薄片的增强作用是主要的贡献者。连同链约束效应一起表现为玻璃化转变温度的明显升高,这为T-g以下的刚度变化提供了充分的合理化。但是,在高于Tg的温度下会显示出额外的增强效果。该机制可能涉及基于基体聚合物链与填料颗粒之间波动的氢键相互作用而形成的动态网络。 (C)2015 Elsevier Ltd.保留所有权利。

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